Experimental Study of Heating Surface Angle Effects on Single Bubble Growth

Nucleate pool boiling experiments were performed using pure R11 for various surface angles under constant heat flux conditions during saturated pool boiling. A 1-mm-diameter circular heater with an artificial cavity in the center that was fabricated using a MEMS technique and a high-speed controller...

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Published inJournal of mechanical science and technology Vol. 20; no. 11; pp. 1980 - 1992
Main Authors Kim, Jeongbae, Kim, Hyung Dae, Lee, Jangho, Kwon, Young Chul, Kim, Jeong Hoon, Kim, Moo Hwan
Format Journal Article
LanguageEnglish
Published Seoul 대한기계학회 01.11.2006
Korean Society of Mechanical Engineers
Springer Nature B.V
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ISSN1738-494X
1976-3824
DOI10.1007/BF03027591

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Summary:Nucleate pool boiling experiments were performed using pure R11 for various surface angles under constant heat flux conditions during saturated pool boiling. A 1-mm-diameter circular heater with an artificial cavity in the center that was fabricated using a MEMS technique and a high-speed controller were used to maintain the constant heat flux. Bubble growth images were taken at 5000 frames per second using a high-speed CCD camera. The bubble geometry was obtained from the captured bubble images. The effects of the surface angle on the bubble growth behavior were analyzed for the initial and thermal growth regions using dimensional scales. The parameters that affected the bubble growth behavior were the bubble radius, bubble growth rate, sliding velocity, bubble shape, and advancing and receding contact angles. These phenomena require further analysis for various surface angles and the obtained constant heat flux data provide a good foundation for such future work.[PUBLICATION ABSTRACT]
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G704-000058.2006.20.11.020
ISSN:1738-494X
1976-3824
DOI:10.1007/BF03027591